APPARATUS FOR INCREASING ENERGY YIELD IN BIFACIAL PHOTOVOLTAIC MODULES
A system for generating electricity from solar energy comprises a first vertically-oriented bifacial photovoltaic module, a second vertically-oriented bifacial photovoltaic module positioned a horizontal distance form the first bifacial photovoltaic module, and a macro-textured structure positioned between the first and second bifacial photovoltaic modules. The macro-textured structure includes a plurality of protruding features having reflective surfaces, and the protruding features are operative to reflect light incoming within a range of 0 to 10 degree of vertical toward the first and second bifacial photovoltaic modules.
The present invention relates generally to solar energy capture using photovoltaic cell modules, and in particular, relates to a textured apparatus that can be used to maximize energy yield in vertically-mounted bifacial photovoltaic modules.
BACKGROUND OF THE INVENTIONBifacial solar (PV) modules are panels that include photovoltaic cells on both planar faces. In many applications, bifacial PV modules are mounted in a vertical alignment that is helpful for reducing dust accumulation. Obliquely-mounted, i.e., non-vertical, panels tend to dramatically decrease in energy yield over time due to dust accumulation unless they are regularly cleaned. Due to this advantage, vertically-mounted bifacial PV modules are particularly promising candidates for power generation in desert-like environments in which the concentration of aerosols is high for a significant portion of the year and because they are subject to high rates of dust accumulation.
A drawback of installing bifacial PV modules in a vertical configuration is that they tend to receive less sunlight during the middle of the day when the solar radiation is parallel or near parallel to the surfaces of the modules.
It would therefore be advantageous to remedy, mitigate, or at least ameliorate the midday power loss associated with vertically-mounted bifacial modules, so that the benefits of the vertical configuration in terms of reduced dust accumulation can be realized without suffering undue midday losses. It would be a further benefit to remedy, mitigate, or ameliorate power loss associated with vertically-mounted bifacial modules in a way in which cleaning operations are not impeded or complicated. The present invention addresses one or more of these and other problems in the art.
SUMMARY OF THE INVENTIONEmbodiments of the present invention provide a system for generating electricity from solar energy that comprises a first vertically-oriented bifacial photovoltaic module, a second vertically-oriented bifacial photovoltaic module positioned a horizontal distance form the first bifacial photovoltaic module, and a macro-textured structure positioned between the first and second bifacial photovoltaic modules, the macro-textured structure having surface including a plurality of protruding features having reflective surfaces. The protruding features are operative to reflect light incoming within a range of 0 to 10 degree of vertical toward the first and second bifacial photovoltaic modules.
In some embodiments, a plurality of drainage holes positioned between adjacent protruding features on the macro-textured surface, the drainage holes adapted to remove dust and moisture from the macro-textured structure. In some implementations, the plurality of protruding features of the macro-textured structure is covered with a reflective coating layer.
In some embodiments, the plurality of protruding features is pyramidal in shape. In other embodiments, the plurality of protruding features is dome-shaped. Alternatively, the plurality of protruding features can have a variety of shapes. The plurality of protruding features can form a regular, periodic pattern on the surface of the macro-textured structure.
Embodiments of the present invention also provide an apparatus for improving the midday energy yield of a solar energy facility including a series of vertically-oriented bifacial photovoltaic modules. The apparatus comprises a macro-textured structure adapted to be positioned between adjacent module of a the series of bifacial photovoltaic modules, the macro-textured structure having surface including a plurality of protruding features having reflective surfaces that are operative to reflect light incoming within a range of 0 to 10 degree of vertical toward the first and second bifacial photovoltaic modules. The apparatus further includes a plurality of drainage holes positioned between adjacent protruding features on the macro-textured surface that are adapted to remove dust and moisture from the macro-textured structure. In some embodiments, the plurality of protruding features of the macro-textured structure is covered with a reflective coating layer.
In some embodiments, the plurality of protruding features of the apparatus is pyramidal in shape. In other embodiments the plurality of protruding features of the apparatus are dome-shaped. Alternatively, the plurality of protruding features of the apparatus can have a variety of shapes.
Additionally, in some implementations, the plurality of protruding features form a regular, periodic pattern on the surface of the macro-textured structure. In other implementations, the plurality of protruding features form a non-periodic pattern on the surfaceof the macro-textured structure.
These and other features can be appreciated from the accompanying description of certain embodiments of the invention which are discussed in relation to the accompanying drawing figures.
By way of overview, to increase the amount of solar radiation received by vertically-mounted bifacial PV modules, a macro-textured structure is positioned between adjacent bifacial modules to redirect incoming radiation toward the PV modules. The macro-textured structure reflects and/or scatters solar radiation that is incident at an angle ranging between 0° and 10° degrees of vertical (referred to herein as “vertical radiation”) at various angles, enabling a substantial portion of the incident radiation to be redirected toward and received by photovoltaic elements of the bifacial PV modules.
A second bifacial PV module 120 is positioned horizontally with respect to the first bifacial PV module, at a sufficient distance, taking into consideration the height of the modules, to avoid mutual shading effects, and thus for solar radiation to reach the bottom of each module. Second bifacial PV module 120 also includes a planar transparent covering 121 and a plurality of photovoltaic elements 122, 124, 126 arranged along the module. Photovoltaic elements 122, 124, 126 include photovoltaic cells on both south and north-facing sides and can also generate electrical current based on radiation received through either south or north-facing sides of covering 121.
A macro-textured structure 130 is positioned between the bifacial PV modules 110, 120. Macro-textured structure 130 can be configured as a textured matting that extends across all or most of the horizontal distance between the modules 110, 120 and also extends in a perpendicular direction (into the page) corresponding to the depth of the modules. In some embodiments, the macro-textured structure 130 can be conveniently installed in the system as a single unit on a supporting structure between the bifacial PV modules (not shown in the figure) in the manner of laying down a matting or tarp. It is preferable for the macro-textured structure 130 to be positioned at a lower level than all or a substantial majority of the photovoltaic elements of the bifacial modules.
Macro-textured structure 130 is “textured” with a plurality protruding features e.g., 132, 134, 136, 138. The protruding features e.g., 132, 134, 136, 138 can be formed in a regular, periodic sequence as shown, or can include irregularities or varying periodicity. Additionally, while
The substrate of the macro-textured structure 130 is preferably made from relatively inexpensive materials such as lightweight structural plastics. The substrate can be textured to include the protruding features using known techniques such as embossing and lithography. The reflective layers e.g., 133, 135, 137 can be fabricated by depositing one or more layers of reflective and/or diffusive material, such as a metallic or polymeric film onto the underlying textured substrate. The reflective material can be made of aluminum and can be protected with an aluminum oxide layer to prevent degradation due to humidity.
As shown in the cross-sectional of
Also shown in
A surface of the textured matting opposite the protruding features can be flat in certain embodiments. In certain embodiments, the matting can be rigid, while in others it can accommodate a degree of flex to support mounting on curved surfaces, if desired. The matting can include a contact adhesive for affixing the macro-textured structure between bifacial PV modules 110, 120, or an adhesive can be applied to its under surface in the field. In certain embodiments, a portion of the drainage holes 142, 144, 146, 148 can be utilized to secure the matting to the structure that supports the bifacial PV modules 110, 120. In other embodiments, the matting can include features that are configured to engage with other structure to affix the matting in place.
It is to be appreciated that the depicted embodiments include pyramidal and dome-shaped protruding features, other shapes can be used. For example other possible shapes include, but are not limited to, parabolic, cone-shaped, and pagoda-shaped. It is preferable for the protruding features to be downward-sloping from a central point to facilitate removal of dust and moisture from the surfaces of the protruding features.
It is to be understood that any structural and functional details disclosed herein are not to be interpreted as limiting the systems and methods, but rather are provided as a representative embodiment and/or arrangement for teaching one skilled in the art one or more ways to implement the methods.
It is to be further understood that like numerals in the drawings represent like elements through the several figures, and that not all components and/or steps described and illustrated with reference to the figures are required for all embodiments or arrangements
The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. As used herein, the singular forms “a”, “an” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise. It will be further understood that the terms “comprises” and/or “comprising”, when used in this specification, specify the presence of stated features, integers, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and/or groups thereof.
Terms of orientation are used herein merely for purposes of convention and referencing, and are not to be construed as limiting. However, it is recognized these terms could be used with reference to a viewer. Accordingly, no limitations are implied or to be inferred.
Also, the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. The use of “including,” “comprising,” or “having,” “containing,” “involving,” and variations thereof herein, is meant to encompass the items listed thereafter and equivalents thereof as well as additional items.
While the invention has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications will be appreciated by those skilled in the art to adapt a particular instrument, situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims.
Claims
1. A system for generating electricity from solar energy comprising:
- a first vertically-oriented bifacial photovoltaic module;
- a second vertically-oriented bifacial photovoltaic module positioned a horizontal distance form the first bifacial photovoltaic module; and
- a macro-textured structure positioned between the first and second bifacial photovoltaic modules, the macro-textured structure having surface including a plurality of protruding features having reflective surfaces,
- wherein the protruding features are operative to reflect light incoming within a range of 0 to 10 degree of vertical toward the first and second bifacial photovoltaic modules.
2. The system of claim 1, further comprising:
- a plurality of drainage holes positioned between adjacent protruding features on the macro-textured surface, the drainage holes adapted to remove dust and moisture from the macro-textured structure.
3. The system of claim 1, wherein each of the plurality of protruding features of the macro-textured structure is covered with a reflective coating layer.
4. The system of claim 1, wherein a portion of the plurality of protruding features is pyramidal in shape.
5. The system of claim 1, wherein a portion of the plurality of protruding features is dome-shaped.
6. The system of claim 1, wherein the plurality of protruding features has a variety of shapes.
7. The system of claim 1, wherein the plurality of protruding features form a regular, periodic pattern on the surface of the macro-textured structure.
8. An apparatus for improving the midday energy yield of a solar energy facility including a series of vertically-oriented bifacial photovoltaic modules, the apparatus comprising:
- a macro-textured structure adapted to be positioned between adjacent module of a the series of bifacial photovoltaic modules, the macro-textured structure having surface including a plurality of protruding features having reflective surfaces that are operative to reflect light incoming within a range of 0 to 10 degree of vertical toward the first and second bifacial photovoltaic modules; and
- a plurality of drainage holes positioned between adjacent protruding features on the macro-textured surface, the drainage holes adapted to remove dust and moisture from the macro-textured structure.
9. The apparatus of claim 8, wherein the plurality of protruding features of the macro-textured structure is covered with a reflective coating layer.
10. The apparatus of claim 8, wherein a portion of the plurality of protruding features is pyramidal in shape.
11. The apparatus of claim 8, wherein a portion of the plurality of protruding features is dome-shaped.
12. The apparatus of claim 8, wherein the plurality of protruding features has a variety of shapes.
13. The apparatus of claim 8, wherein the plurality of protruding features forms a regular, periodic pattern on the surface of the macro-textured structure.
14. The apparatus of claim 8, wherein the plurality of protruding features forms a non-periodic pattern on the surface of the macro-textured structure.
15. The apparatus of claim 8, wherein the plurality of protruding features have varying height profiles, with protruding features near the center of the macro-textured structure having a greater height than protruding features near the periphery of the macro-textured structure.
Type: Application
Filed: Nov 29, 2017
Publication Date: May 30, 2019
Patent Grant number: 10951160
Inventors: Issam Gereige (Thuwal), Ahmed Al Saggaf (Thuwal)
Application Number: 15/826,152